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MoNGEL: monotonic nested generalized exemplar learning

delete2015-07-29
delete9
PRE
AI
J
Javier Gámez García
H
Habib M. Fardoun
D
Daniyal Alghazzawi
J
José-Ramón Cano
S
Salvador García *
DOI:10.1007/s10044-015-0506-ydelete
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摘要

摘要

En 中文
In supervised prediction problems, the response attribute depends on certain explanatory attributes. Some real problems require the response attribute to represent ordinal values that should increase with some of the explaining attributes. They are called classification problems with monotonicity constraints. In this paper, we aim at formalizing the approach to nested generalized exemplar learning with monotonicity constraints, proposing the monotonic nested generalized exemplar learning (MoNGEL) method. It accomplishes learning by storing objects in , hybridizing instance-based learning and rule learning into a combined model. An experimental analysis is carried out over a wide range of monotonic data sets. The results obtained have been verified by non-parametric statistical tests and show that MoNGEL outperforms well-known techniques for monotonic classification, such as ordinal learning model, ordinal stochastic dominance learner and k-nearest neighbor, considering accuracy, mean absolute error and simplicity of constructed models.
Keyword:
Monotonic classification
Instance-based learning
Rule induction
Nested generalized examples

期刊

Pattern Analysis and Applications 封面图
Pattern Analysis and Applications
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2
论文数:
1.9K
被引数:
1.9K

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King Abdulaziz University
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2.0W
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被引数: 3.3W
U
universidad de jaen
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4.5K
论文数: 4.6K
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U
University of Granada
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2.3W
论文数: 1.9W
被引数: 24
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